الباحثون

Xin Jin

المنشورات 7

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$R^2$-WAM: Repair-and-Reject Post-Training for World Action Models

Ruiyan Xu, Haisheng Su, Sixu Lin وآخرون · 2026

World Action Models (WAMs) emerge as a promising foundation for policy refinement by predicting the consequences of sampled actions. However, visually plausible predictions can mislead policy refinement if they fail to reflect the input actions. To address this mismatch, we introduce $R^2$-WAM, a two-stage repair-and-r …

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MetaKernelBench: Measuring GPU Kernel Knowledge Transfer Beyond Code

Xueyi Chen, Shiyu Liu, Xin Jin وآخرون · 2026

Recent GPU kernel optimization agents retain what they learn in knowledge bases or as distilled skills. Kernel benchmarks score each attempt's implementation for correctness and speed but leave the reuse value of retained experience unmeasured. We introduce MetaKernelBench, which measures whether experience distilled f …

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APM-Bench: Benchmarking Cross-session Persistent Memory for Egocentric Streaming Video Assistants

Jianguo Huang, Jinming Liu, Qiyao Wang وآخرون · 2026

To serve as real-world personal assistants, streaming video models need persistent memory that retains past experiences for later use. Yet existing streaming benchmarks and methods often focus on individual continuous videos or short clips, overlooking that real-world interactions are often intermittent and require mem …

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Quantum Computing for Network Security Classification: Near-Term Classification and Long-Term Memory Efficiency

Yuqing Li, Poonam Bala Nehru, Yunpeng Zhang وآخرون · 2026

Quantum computing has already been explored in several network-security applications. However, how quantum computing may contribute to network-security classification in both the near term and the longer term has not been systematically discussed. This paper studies this question through two complementary experiments. …

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FAN: Foresight Action Normalization for Continual Adaptation of Vision-Language-Action Models

Yijun Hong, Jiarun Zhu, Xiaoquan Sun وآخرون · 2026

Vision-Language-Action (VLA) models pre-trained on large-scale, closed datasets have demonstrated remarkable success across diverse robotic manipulation tasks. However, their long-term real-world deployment necessitates continuously acquiring new skills while retaining previously learned capabilities. While pioneering …

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